PAV and the ROC convex hull
作者:Tom Fawcett, Alexandru Niculescu-Mizil
摘要
Classifier calibration is the process of converting classifier scores into reliable probability estimates. Recently, a calibration technique based on isotonic regression has gained attention within machine learning as a flexible and effective way to calibrate classifiers. We show that, surprisingly, isotonic regression based calibration using the Pool Adjacent Violators algorithm is equivalent to the ROC convex hull method.
论文关键词:Classification, Classifier calibration, ROC, Class skew
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论文官网地址:https://doi.org/10.1007/s10994-007-5011-0